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Optimization of channel dimensions and gas diffusion layer thickness based on mass transfer characteristics of proton exchange membrane fuel cell

机译:基于质子交换膜燃料电池质量传递特性的通道尺寸和气体扩散层厚度的优化

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To improve the volume power density of proton exchange membrane fuel cell (PEMFC), a design of graphite bipolar plate straight channel characterized by narrow ribs is studied in this article. A three-dimensional multiphase model of PEMFC is employed to analyze the effects of the geometric parameters on the mass transfer characteristics and power density. The results show that smaller channel width and channel depth can enhance water removal and gas transport, which could increase the fuel cell performance. However, the influence of gas diffusion layer (GDL) thickness on fuel cell performance is not monotonous which means that there is an optimal value. The overall dimensions are optimized with volume power density as objective function. The best performance is obtained when the channel width, channel depth and GDL thickness are 0.1, 0.2 and 0.05 mm, respectively. Compared with the conventional channel design, the volume power density of optimal channel is significantly increased by 211.32% at 0.6 V.
机译:为了提高质子交换膜燃料电池(PEMFC)的体积功率密度,在本文中研究了具有窄肋的石墨双极板直筒的设计。采用PEMFC的三维多相模型来分析几何参数对质量传递特性和功率密度的影响。结果表明,较小的沟道宽度和沟道深度可以增强除水和气体运输,这可以提高燃料电池性能。然而,气体扩散层(GDL)厚度对燃料电池性能的影响不是单调的,这意味着存在最佳值。整体尺寸以体积功率密度为目标函数优化。当沟道宽度,通道深度和GDL厚度分别为0.1,0.2和0.05mm时,获得最佳性能。与传统通道设计相比,最佳通道的体积功率密度在0.6V时显着增加211.32%。

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